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Small Groups Big Impact: Eliminating Li+ Traps in Single-Ion Conducting Polymer Electrolytes

机译:小群体大撞击:消除单离子导电聚合物电解质中的Li +陷阱

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摘要

Single-ion conducting polymer electrolytes exhibit great potential for next-generation high-energy-density Li metal batteries, although the lack of sufficient molecular-scale insights into lithium transport mechanisms and reliable understanding of key correlations often limit the scope of modification and design of new materials. Moreover, the sensitivity to small variations of polymer chemical structures (e.g., selection of specific linkages or chemical groups) is often overlooked as potential design parameter. In this study, combined molecular dynamics simulations and experimental investigations reveal molecular-scale correlations among variations in polymer structures and Li transport capabilities. Based on polyamide-based single-ion conducting quasi-solid polymer electrolytes, it is demonstrated that small modifications of the polymer backbone significantly enhance the Li transport while governing the resulting membrane morphology. Based on the obtained insights, tailored materials with significantly improved ionic conductivity and excellent electrochemical performance are achieved and their applicability in LFP||Li and NMC||Li cells is successfully demonstrated.
机译:单离子导电聚合物电解质对下一代高能密度Li金属电池具有很大的潜力,尽管缺乏足够的分子级洞察锂传输机制,并且对关键相关性的可靠理解通常会限制改进和设计的范围新材料。此外,对聚合物化学结构的小变化的敏感性(例如,特定连杆或化学基团的选择)通常被视为潜在的设计参数。在该研究中,组合的分子动力学模拟和实验研究揭示了聚合物结构和LI运输能力的变化之间的分子尺度相关性。基于基于聚酰胺的单离子传导准固体聚合物电解质,证明了聚合物主链的小修饰显着增强了LI运输,同时控制所得膜形态。基于所获得的见解,实现了具有显着改善的离子电导率和优异的电化学性能的量身定制的材料,并成功地证明了它们在LFP || Li和NMC || Li细胞中的适用性。

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